EP4119885A1 - Bug killing gun - Google Patents
Bug killing gun Download PDFInfo
- Publication number
- EP4119885A1 EP4119885A1 EP22181332.2A EP22181332A EP4119885A1 EP 4119885 A1 EP4119885 A1 EP 4119885A1 EP 22181332 A EP22181332 A EP 22181332A EP 4119885 A1 EP4119885 A1 EP 4119885A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- compressed gas
- chamber
- gun
- piston
- activation
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
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Classifications
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01M—CATCHING, TRAPPING OR SCARING OF ANIMALS; APPARATUS FOR THE DESTRUCTION OF NOXIOUS ANIMALS OR NOXIOUS PLANTS
- A01M27/00—Apparatus having projectiles or killing implements projected to kill the animal, e.g. pierce or shoot, and triggered thereby
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01M—CATCHING, TRAPPING OR SCARING OF ANIMALS; APPARATUS FOR THE DESTRUCTION OF NOXIOUS ANIMALS OR NOXIOUS PLANTS
- A01M3/00—Manual implements, other than sprayers or powder distributors, for catching or killing insects, e.g. butterfly nets
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01M—CATCHING, TRAPPING OR SCARING OF ANIMALS; APPARATUS FOR THE DESTRUCTION OF NOXIOUS ANIMALS OR NOXIOUS PLANTS
- A01M3/00—Manual implements, other than sprayers or powder distributors, for catching or killing insects, e.g. butterfly nets
- A01M3/02—Fly-swatters
- A01M3/027—Fly-swatters using resilient means or projectiles
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41A—FUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
- F41A17/00—Safety arrangements, e.g. safeties
- F41A17/46—Trigger safeties, i.e. means for preventing trigger movement
- F41A17/48—Automatically operated trigger safeties, i.e. operated by breech opening or closing movement
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/50—Magazines for compressed-gas guns; Arrangements for feeding or loading projectiles from magazines
- F41B11/51—Magazines for compressed-gas guns; Arrangements for feeding or loading projectiles from magazines the magazine being an integral, internal part of the gun housing
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/50—Magazines for compressed-gas guns; Arrangements for feeding or loading projectiles from magazines
- F41B11/52—Magazines for compressed-gas guns; Arrangements for feeding or loading projectiles from magazines the projectiles being loosely held in a magazine above the gun housing, e.g. in a hopper
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/60—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas
- F41B11/62—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas with pressure supplied by a gas cartridge
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/60—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas
- F41B11/64—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas having a piston effecting a compressor stroke during the firing of each shot
- F41B11/642—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas having a piston effecting a compressor stroke during the firing of each shot the piston being spring operated
- F41B11/646—Arrangements for putting the spring under tension
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/60—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas
- F41B11/68—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas the gas being pre-compressed before firing
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/60—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas
- F41B11/68—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas the gas being pre-compressed before firing
- F41B11/681—Pumping or compressor arrangements therefor
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/60—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas
- F41B11/68—Compressed-gas guns, e.g. air guns; Steam guns characterised by the supply of compressed gas the gas being pre-compressed before firing
- F41B11/681—Pumping or compressor arrangements therefor
- F41B11/682—Pressure accumulation tanks
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41B—WEAPONS FOR PROJECTING MISSILES WITHOUT USE OF EXPLOSIVE OR COMBUSTIBLE PROPELLANT CHARGE; WEAPONS NOT OTHERWISE PROVIDED FOR
- F41B11/00—Compressed-gas guns, e.g. air guns; Steam guns
- F41B11/80—Compressed-gas guns, e.g. air guns; Steam guns specially adapted for particular purposes
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41G—WEAPON SIGHTS; AIMING
- F41G1/00—Sighting devices
- F41G1/32—Night sights, e.g. luminescent
- F41G1/34—Night sights, e.g. luminescent combined with light source, e.g. spot light
- F41G1/35—Night sights, e.g. luminescent combined with light source, e.g. spot light for illuminating the target, e.g. flash lights
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41G—WEAPON SIGHTS; AIMING
- F41G3/00—Aiming or laying means
- F41G3/08—Aiming or laying means with means for compensating for speed, direction, temperature, pressure, or humidity of the atmosphere
Definitions
- This invention relates to the fields of weaponry and insect control, and more specifically to a device for killing insects at a distance without use of toxic chemicals.
- U.S. Patent No. 1,611,533, issued to Kirsten is directed to an insect shooting apparatus wherein a spring-loaded pistol-type device is used to dispense a shot or bead of material in order to exterminate various household insects such as flies.
- the device takes the form of a gun or pistol with a piston that is operated through a linkage mechanism and released under spring actuation by means of trigger. The movement of piston in a forward direction ultimately causes release of a shot holding a nozzle from a tapered end of the barrel.
- a shot holding nozzle contains a liquid which when dispersed upon an insect such as a fly and exterminates same.
- U.S. Patent No. 4,653,433, issued to Comparetti is directed to a flea zapper which takes the form of a pistol and when activated by a triggered mechanism releases a powder material for controlling insects such as fleas normally found on furry animals.
- the flea zapper takes the form of a handgun with a pistol-type handle with a trigger to be operated by the finger of the user. When the trigger is operated, a sample of powder is released from the powder chamber through the barrel portion through an opening and dispensed onto the animal.
- U.S. Patent No. 3,791,303 issued to Sweeny et al . is directed to deterrent ammunition which takes the form of a liquid-filled hollow ball.
- the projectile assembly is fired from an oversized tubular barrel extension on the end of a shotgun.
- the projectile assembly contains deterrent ammunition which upon rupture may control flies or other insects.
- U.S. Patent Application No. 2006/0283433, published for Gerardo is directed to a projection apparatus using pressurized air.
- the device comprises a gun-like device, an air chamber with a trigger with a valve inside of connector that connects the air chamber to the barrel.
- the air chamber can be filled with compressed air and after loading the gun with an object to be fired from barrel the operator then opens the valve to allow the air pressure out of chamber releasing the air from the chamber under operation of trigger and the projectile is released from the barrel.
- U.S. Patent No. 7,207,497, issued to Clark is directed to a dry flake sprayer and method which is used to spray dry flakes utilizing a pressurized gas source.
- the flake spraying device includes a spray module and a gun module wherein the spray module comprises an enclosure with a gas flow conduit and a flake conduit.
- a supply of dry flakes is placed into the enclosure and connected to gun and when the trigger is operated. Gas flows from the control valve through nozzle which causes the flakes to be dispersed through conduit.
- U.S. Patent No. 8,251,051, issued to Maggiore is directed to a bug killing gun that includes a compressed gas source fluidly connected to a chamber connected to a barrel.
- a compressed gas release mechanism is connected to the compressed gas source.
- a projectile storage magazine stores particulate projectiles and is located adjacent the chamber.
- a projectile loading mechanism moves the projectiles into the chamber from the magazine.
- a cocking mechanism is mechanically connected to the compressed gas source, the compressed gas release mechanism, and the projectile loading mechanism.
- a stock houses and supports the compressed gas source, the compressed gas release mechanism, the barrel, the chamber, the projectile storage magazine, the cocking mechanism and the projectile loading mechanism.
- the projectile loading mechanism loads a predetermined quantity of the particulate projectiles into the chamber.
- the compressed gas release mechanism is activated the projectiles are ejected from the chamber into the barrel and expelled from the gun.
- the present invention addresses all of the deficiencies of prior art bug killing gun inventions and satisfies all of the objectives described above.
Landscapes
- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Life Sciences & Earth Sciences (AREA)
- Pest Control & Pesticides (AREA)
- Environmental Sciences (AREA)
- Zoology (AREA)
- Wood Science & Technology (AREA)
- Insects & Arthropods (AREA)
- Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Toys (AREA)
- Catching Or Destruction (AREA)
- Filling Or Discharging Of Gas Storage Vessels (AREA)
- Containers And Packaging Bodies Having A Special Means To Remove Contents (AREA)
Abstract
Description
- This invention relates to the fields of weaponry and insect control, and more specifically to a device for killing insects at a distance without use of toxic chemicals.
- Many methods and devices have been developed for dealing with insect pests. Many people are particularly interested in dealing with flying insects as they tend to be very visible, sometimes noisy and often possessing the capability to bite or sting. Traditional means for killing flying insects include devices such as fly swatters and their equivalent or chemical sprays. The former requires a certain skill and agility to be effective and the latter leaves a potentially harmful chemical residue in the area where used. The present invention addresses these concerns and also provides entertainment to those tasked with removal of insect pests in the form of a gun designed for shooting flying insects. Other devices developed to provide insect removal in a related fashion include the following inventions.
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U.S. Patent No. 1,611,533, issued to Kirsten , is directed to an insect shooting apparatus wherein a spring-loaded pistol-type device is used to dispense a shot or bead of material in order to exterminate various household insects such as flies. The device takes the form of a gun or pistol with a piston that is operated through a linkage mechanism and released under spring actuation by means of trigger. The movement of piston in a forward direction ultimately causes release of a shot holding a nozzle from a tapered end of the barrel. A shot holding nozzle contains a liquid which when dispersed upon an insect such as a fly and exterminates same. -
U.S. Patent No. 4,653,433, issued to Comparetti is directed to a flea zapper which takes the form of a pistol and when activated by a triggered mechanism releases a powder material for controlling insects such as fleas normally found on furry animals. The flea zapper takes the form of a handgun with a pistol-type handle with a trigger to be operated by the finger of the user. When the trigger is operated, a sample of powder is released from the powder chamber through the barrel portion through an opening and dispensed onto the animal. -
U.S. Patent No. 3,791,303, issued to Sweeny et al . is directed to deterrent ammunition which takes the form of a liquid-filled hollow ball. The projectile assembly is fired from an oversized tubular barrel extension on the end of a shotgun. The projectile assembly contains deterrent ammunition which upon rupture may control flies or other insects. -
U.S. Patent Application No. 2006/0283433, published for Gerardo is directed to a projection apparatus using pressurized air. The device comprises a gun-like device, an air chamber with a trigger with a valve inside of connector that connects the air chamber to the barrel. The air chamber can be filled with compressed air and after loading the gun with an object to be fired from barrel the operator then opens the valve to allow the air pressure out of chamber releasing the air from the chamber under operation of trigger and the projectile is released from the barrel. -
U.S. Patent No. 7,207,497, issued to Clark is directed to a dry flake sprayer and method which is used to spray dry flakes utilizing a pressurized gas source. The flake spraying device includes a spray module and a gun module wherein the spray module comprises an enclosure with a gas flow conduit and a flake conduit. A supply of dry flakes is placed into the enclosure and connected to gun and when the trigger is operated. Gas flows from the control valve through nozzle which causes the flakes to be dispersed through conduit. -
U.S. Patent No. 8,251,051, issued to Maggiore , the Applicant, is directed to a bug killing gun that includes a compressed gas source fluidly connected to a chamber connected to a barrel. A compressed gas release mechanism is connected to the compressed gas source. A projectile storage magazine stores particulate projectiles and is located adjacent the chamber. A projectile loading mechanism moves the projectiles into the chamber from the magazine. A cocking mechanism is mechanically connected to the compressed gas source, the compressed gas release mechanism, and the projectile loading mechanism. A stock houses and supports the compressed gas source, the compressed gas release mechanism, the barrel, the chamber, the projectile storage magazine, the cocking mechanism and the projectile loading mechanism. When the gun is cocked, the projectile loading mechanism loads a predetermined quantity of the particulate projectiles into the chamber. When the compressed gas release mechanism is activated the projectiles are ejected from the chamber into the barrel and expelled from the gun. - It is an objective of the present invention to provide a device for killing flying insects. It is a further objective to provide such a device that uses non-toxic means for killing the insects. It is a still further objective of the invention to provide an insect killing device that incorporates positive safety features. It is yet a further objective to provide such a device that is entertaining to use and inexpensive to operate. Finally, it is an objective of the present invention to provide an insect killing device that is durable, inexpensive and simple for the user to master.
- While some of the objectives of the present invention are disclosed in the prior art, none of the inventions found include all of the requirements identified.
- The present invention addresses all of the deficiencies of prior art bug killing gun inventions and satisfies all of the objectives described above.
- (1) An improved bug killing gun providing the desired features may be constructed from the following components. A compressed gas source is provided. A chamber is provided. The chamber is fluidly connected to the compressed gas source. A barrel is provided. The barrel is located at a distal end of the chamber. A compressed gas release mechanism is provided. The release mechanism is connected to the compressed gas source. A projectile storage magazine is provided. The magazine stores particulate projectiles and is located adjacent the chamber. A projectile loading mechanism is provided. The loading mechanism moves the particulate projectiles into the chamber from the magazine. A cocking mechanism is mechanically connected to the compressed gas source, the compressed gas release mechanism, and the projectile loading mechanism. A primary automatic safety mechanism is provided. The primary safety mechanism moves to an activated position upon utilization of the cocking mechanism and moves to a deactivated position when manually deactivated by a user. The status of the primary safety mechanism is displayed by movement of a primary external safety lever from a first, safe position to a second, firing position. A stock is provided. The stock houses and supports the compressed gas source, the compressed gas release mechanism, the barrel, the chamber, the projectile storage magazine, the cocking mechanism and the projectile loading mechanism. When the gun is cocked by the cocking mechanism, the projectile loading mechanism gathers a predetermined quantity of the particulate projectiles and positions the projectiles in the chamber. When the compressed gas release mechanism is activated the projectiles are ejected from the chamber into the barrel and expelled from the gun.
- (2) In a variant of the invention, a secondary safety indicator is provided. The secondary safety indicator is moved from a hidden position to a visible position by the gun cocking action and is moved to the hidden position by activation of the compressed gas release mechanism.
- (3) In another variant, the compressed gas source is selected from the group that includes a prefilled CO2 cartridge, a refillable compressed gas cylinder, a pneumatically pumped gas reservoir, a spring-activated compressed gas chamber and an external compressed gas line.
- (4) In still another variant, the spring-activated compressed gas chamber further includes a cylinder. The cylinder has a front end and a rear end and is fluidly connected to the chamber at the front end. A piston is provided. The piston fits sealably in the cylinder and is located within it. A compression spring is provided. The compression spring urges the piston toward the front end. A spring compression mechanism is provided. The compression mechanism urges the piston towards the rear end and compresses the compression spring. A latching mechanism is provided. The latching mechanism releasably retains the piston adjacent the rear end and retains the compression spring in a compressed state. A user performs the gun cocking action, the spring compression mechanism is operated, the piston is urged toward the rear end of the cylinder, the spring is compressed and the spring and the piston are retained by the latching mechanism until released, allowing the piston to move rapidly toward the front end of the cylinder. This provides a burst of compressed gas in the cylinder and to the connected chamber.
- (5) In yet another variant, the compressed gas release mechanism further includes a trigger. The trigger is urged forward by a trigger return spring. The trigger has an upper protrusion. The upper protrusion engages an internal safety pivot. The safety pivot prevents release of the latching mechanism unless the cocking action is completed. The trigger has an elevating ramp located rewardly of the upper protrusion. The elevating ramp urges a releasing bracket of the latching mechanism upwardly against a downwardly urging compression spring as the trigger is moved rearwardly. The releasing bracket moves slidably within a vertical channel in the supporting stock and has a downwardly facing rib. The rib releasably engages an upwardly facing control notch in a main pole of the latching mechanism.
The main pole is attached to the piston, has an upwardly angled ramp at a rear end, located behind the control notch. The ramp guides the rib into the control notch. The main pole moves rearwardly in a channel in the supporting stock during the cocking action. The releasing bracket retains the main pole in a first, cocked position as the rib engages the control notch. The bracket releases the main pole to a second, fired position as the trigger is moved rearwardly, elevating the releasing bracket and raising the rib from the control notch. This allows the main pole and the piston to move forward as urged by the compression spring, pressurizing the cylinder. - (6) In a further variant, the projectile storage magazine further includes a conical container. The container has a circular opening at a lower end. The lower end is fitted sealably to an upper end of a vertical circular opening through the chamber. The container has a sealing lid removably or hingedly attached at an upper end.
- (7) In still a further variant, the lower end of the container is fitted sealably to the upper end of said vertical circular opening through the chamber with a sealing washer.
- (8) In yet a further variant, the projectile loading mechanism further includes a metering rod. The metering rod is sized and shaped to fit sealably through the vertical circular opening through the chamber and has an orthogonal activation bar extending from its lower end and a through hole located above the activation bar. The through hole is orthogonal to the bar and the metering rod and sized and located to align with the chamber when the bar is positioned against a stopping surface. The activation bar is urged upwardly by a return compression spring to rest against the lower end of the vertical circular opening in the chamber.
The through hole fills with the particulate projectiles when located above the chamber in the conical container during the cocking action. The activation bar is urged downwardly by a pivotally mounted subordination pole to rest against the stopping surface just after activation of the compressed gas release mechanism. This permits the compressed gas to eject the particulate projectiles from the chamber and through the barrel. - (9) In another variant of the invention, the projectile loading mechanism further includes a mid-chamber pipe. The pipe extends downwardly from a lower end of the magazine. A lower portion of the pipe provides a stop for one end of a return compression spring. A trajectory guide is provided. The guide is located below the lower end of the magazine, has a hollow bore sized to fit slidably about the pipe and has a vertical slot that extends downwardly from the lower end for a first predetermined distance. The slot terminates in a stopping surface. The trajectory guide is located about the pipe and provides a support platform for attachment of the projectile storage magazine. A metering rod is provided. The rod is cylindrical in shape and is sized to fit slidably within the pipe and has an orthogonal activation bar extending from its lower end. The metering rod has a through hole located above the activation bar. The through hole is orthogonal to the bar and the metering rod and is sized and located to align with the chamber when the bar is positioned against the stopping surface. The return compression spring urges the metering rod upwardly to rest against the lower end of the vertical circular opening in the chamber. A subordination pole is provided. The pole has a first end and a second end and is pivotally mounted to a cover for the compressed gas source. The first end of the subordination pole includes a metering slot. The metering slot surrounds the activation bar. The second end of the subordination pole is urged upwardly by a cam upon activation of the gas release mechanism. Upward movement of the second end of the subordination pole moves the activation bar downwardly, compresses the return compression spring and aligns the through hole of the metering rod with the chamber. This permits the compressed gas to drive the particulate projectiles out of the chamber and through the barrel. Downward movement of the second end of the subordination pole causes the activation bar to move upwardly as urged by the return compression spring. This allows the particulate projectiles to fill the through hole of the metering rod as it moves in the projectile storage magazine surrounded by the particulate projectiles.
- (10) In still another variant, the spring compression mechanism further includes a primary gear rack. The gear rack is slidably located in a channel in the supporting stock, has gear teeth located upon an upper surface and has mounting fixtures adjacent a forward end for attachment of a slide handle. A reduction gear drive is provided. The gear drive is mounted to an outer cover of the cylinder. A secondary gear rack is provided. The secondary rack is attached indirectly to the piston and is located slidably in a slot in the outer cover above the reduction gear drive. The primary gear rack engages the reduction gear drive and the reduction gear drive engaging the secondary gear rack. Rearward movement of the slide handle moves the primary gear rack rearward, rotates the reduction gear drive, moves the secondary gear rack rearward and moves the piston rearward, compressing the compression spring.
- (11) In yet another variant, a downward pointing cam lobe is provided. The cam lobe is located beneath and orthogonal to the metering slot. A cam activating tab is provided. The tab is located adjacent to a side edge and front end of an upper surface of the primary gear rack. The activating tab has a contoured inner surface. The contoured inner surface is sized, shaped and located to engage a front edge of the cam lobe as the primary gear rack is moved rearwardly and forwardly during operation of the cocking mechanism. Engagement of the cam lobe causes upward movement of the metering rod followed by downward movement of the metering rod during operation of the cocking mechanism. Such movement serving to dislodge any particulate projectiles adhering to the metering rod.
- (12) In a further variant, engagement of the cam lobe by the cam activating tab during forward movement of the primary gear rack during operation of the cocking mechanism provides an auditory confirmation of completion of the operation.
- (13) In still a further variant, a control slot, moving in concert with main pole, maintains a first end of an internal safety pivot in an elevated position during rearward movement of the control slot. This causes a second end of the pivot, which has a downward facing notch, to engage an upper protrusion at an upper end of a trigger of the compressed gas release mechanism, thereby preventing activation of the mechanism. The control slot causes downward movement of the internal safety pivot, upon completion of forward movement of the primary gear rack and the control slot. The downward movement permits release of the downward facing notch from the trigger and permits activation of the gas release mechanism.
- (14) In yet a further variant, the support stock further includes a sight glass. The sight glass is positioned adjacent the magazine and permits a view of a level of the particulate projectiles contained in the magazine.
- (15) In another variant, the gun uses a prefilled CO2 cartridge as a compressed gas source and the gun further includes a cylindrical cartridge chamber. The cartridge chamber is sized and shaped to enclose a CO2 cartridge and has a sealable opening at a first end for introduction of the cartridge. A concave seat located at a second end is provided. The seat is sized and shaped to fit sealably about a discharging end of the cartridge. A hollow puncturing needle is located within the seat. A sealing cap is provided. The cap is removably attached to the cartridge chamber by mating screw threads. Tightening of the cap urges the cartridge against the puncturing needle. A pressure vessel is provided. The pressure vessel is fluidly connected to a metering device. The metering device permits a predetermined charge of compressed gas to enter the chamber upon activation of the compressed gas release mechanism.
- (16) In still another variant, the compressed gas release mechanism further includes a trigger. The trigger is urged forward by a trigger return spring. The trigger has an upper protrusion. The upper protrusion engages an internal safety pivot. The safety pivot prevents activation of the compressed gas release mechanism unless the cocking action is completed. The trigger has an elevating ramp located rearwardly of the upper protrusion. The elevating ramp urges a releasing bracket of the latching mechanism upwardly against a downwardly urging compression spring as the trigger is moved rearwardly. The releasing bracket moves slidably within a vertical channel in the supporting stock and has a downwardly facing rib. The rib releasably engages an upwardly facing control notch in a loading rod. The loading rod is urged forward by a loading coil spring, has an upwardly angled ramp at a rear end, located behind the control notch. The ramp guides the rib into the control notch.
The loading rod moves rearwardly in a channel in the supporting stock during the cocking action. The releasing bracket retains the loading rod in a first, cocked position as the rib engages the control notch. The releasing bracket releases the loading rod to a second, fired position as the trigger is moved rearwardly, elevating the releasing bracket and raising the rib from the control notch. This allows the loading rod to move forward as urged by the loading coil spring. The loading rod activates the projectile loading mechanism and the metering device. - (17) In yet another variant of the invention, the gun uses a pneumatically pumped air reservoir as a compressed gas source and the gun further includes a gas cylinder. The cylinder has an inlet valve and an outlet valve. A piston is provided. The piston fits sealably within the cylinder. A pumping mechanism is provided. The pumping mechanism is mechanically linked to the piston and moves the piston from an extended position to a compressed position within the cylinder. The inlet valve is in an open position as the piston moves from the compressed position to the extended position and is in a closed position as the piston moves from the extended position to the compressed position. The outlet valve is in a closed position as the piston moves from the compressed position to the extended position and is in an open position as the piston moves from the extended position to the compressed position.
The air reservoir is fluidly connected to the outlet valve and the chamber. The projectile loading mechanism permits a predetermined charge of compressed gas to enter the chamber upon activation of the compressed gas release mechanism. Repeated movement of the piston by the pumping mechanism from the extended position to the compressed position within the cylinder will increase pressure within the air reservoir, permitting the particulate projectiles to be ejected from the chamber with increased force upon release of the pressure by the compressed gas release mechanism. - (18) In a further variant, the compressed gas release mechanism further includes a trigger. The trigger is urged forward by a trigger return spring. The trigger has an upper protrusion. The upper protrusion engages an internal safety pivot. The safety pivot prevents activation of the compressed gas release mechanism unless the cocking action is completed. The trigger has an elevating ramp located rearwardly of the upper protrusion. The elevating ramp urges a releasing bracket of the latching mechanism upwardly against a downwardly urging compression spring as the trigger is moved rearwardly. The releasing bracket moves slidably within a vertical channel in the supporting stock and has a downwardly facing rib. The rib releasably engages an upwardly facing control notch in a loading rod. The loading rod is urged forward by a loading coil spring, has an upwardly angled ramp at a rear end, located behind the control notch. The ramp guides the rib into the control notch.
The loading rod moves rearwardly in a channel in the supporting stock during the cocking action. The releasing bracket retains the loading rod in a first, cocked position as the rib engages the control notch. The releasing bracket releases the loading rod to a second, fired position as the trigger is moved rearwardly, elevating the releasing bracket and raising the rib from the control notch. This allows the loading rod to move forward as urged by the loading coil spring. The loading rod activates the projectile loading mechanism. - (19) In still a further variant, the gun uses a refillable compressed gas cylinder as a compressed gas source. The cylinder has a shut off valve and an attachment fitting located adjacent a first end. A mating attachment fitting is provided. The mating fitting is mounted to the support stock and is fluidly connected to a metering device. The metering device is fluidly connected to the chamber and the metering device permits a predetermined charge of compressed gas to enter the chamber upon activation of the compressed gas release mechanism. A charged refillable compressed gas cylinder is attached to the mating attachment fitting, the shut off valve is opened and the compressed gas is released by the metering device upon activation of the compressed gas release mechanism.
- (20) In yet a further variant, the compressed gas release mechanism further includes a trigger. The trigger is urged forward by a trigger return spring. The trigger has an upper protrusion. The upper protrusion engages an internal safety pivot. The safety pivot prevents activation of the compressed gas release mechanism unless the cocking action is completed. The trigger has an elevating ramp located rearwardly of the upper protrusion. The elevating ramp urges a releasing bracket of the latching mechanism upwardly against a downwardly urging compression spring as the trigger is moved rearwardly. The releasing bracket moves slidably within a vertical channel in the supporting stock and has a downwardly facing rib. The rib releasably engages an upwardly facing control notch in a loading rod. The loading rod is urged forward by a loading coil spring, has an upwardly angled ramp at a rear end, located behind the control notch. The ramp guides the rib into the control notch.
The loading rod moves rearwardly in a channel in the supporting stock during the cocking action. The releasing bracket retains the loading rod in a first, cocked position as the rib engages the control notch. The releasing bracket releases the loading rod to a second, fired position as the trigger is moved rearwardly, elevating the releasing bracket and raising the rib from the control notch. This allows the loading rod to move forward as urged by the loading coil spring. The loading rod activates the projectile loading mechanism and the metering device. - (21) In another variant, the gun uses an external compressed gas line as a compressed gas source and the gun further includes an external compressed gas line. The line is connected to a compressed gas source and has a shut off valve and an attachment fitting located adjacent a first end. A mating attachment fitting is provided. The mating fitting is mounted to the support stock and is fluidly connected to a metering device. The metering device is fluidly connected to the chamber. The metering device permits a predetermined charge of compressed gas to enter the chamber upon activation of the compressed gas release mechanism. The external compressed gas line is attached to the mating attachment fitting, the shut off valve is opened and the compressed gas is released by the metering device upon activation of the compressed gas release mechanism.
- (22) In still another variant, the compressed gas release mechanism further includes a trigger. The trigger is urged forward by a trigger return spring. The trigger has an upper protrusion. The upper protrusion engages an internal safety pivot. The safety pivot prevents activation of the compressed gas release mechanism unless the cocking action is completed. The trigger has an elevating ramp located rearwardly of the upper protrusion. The elevating ramp urges a releasing bracket of the latching mechanism upwardly against a downwardly urging compression spring as the trigger is moved rearwardly. The releasing bracket moves slidably within a vertical channel in the supporting stock and has a downwardly facing rib. The rib releasably engages an upwardly facing control notch in a loading rod. The loading rod is urged forward by a loading coil spring, has an upwardly angled ramp at a rear end, located behind the control notch. The ramp guides the rib into the control notch.
The loading rod moves rearwardly in a channel in the supporting stock during the cocking action. The releasing bracket retains the loading rod in a first, cocked position as the rib engages the control notch. The releasing bracket releases the loading rod to a second, fired position as the trigger is moved rearwardly, elevating the releasing bracket and raising the rib from the control notch. This allows the loading rod to move forward as urged by the loading coil spring. The loading rod activates the projectile loading mechanism and the metering device. - (23) In yet another variant of the invention, a pistol grip and a forearm of the support stock have flattened lower surfaces. The flattened surfaces permit the bug killing gun to be balanced in an upright position for adding the particulate projectiles to the projectile storage magazine.
- (24) In a further variant of the invention, the improved bug killing gun further includes a laser sighting device. The laser sighting device includes a battery powered laser. The laser is capable of producing a laser aiming spot. A housing is provided. The housing is adapted to contain the laser, a battery power source and a control circuit for the laser. An attachment mechanism is provided. The attachment mechanism is adapted to attach the laser sighting device adjacent a distal end of the barrel.
- (25) In still a further variant, the attachment mechanism is integrally formed with the distal end of the barrel.
- (26) In yet a further variant, the attachment mechanism is adapted to removably attach the laser sighting device to the distal end of the barrel.
- (27) In another variant, the laser sighting device includes elevation and windage adjustments for an aiming point of the laser aiming spot.
- (28) In still another variant, a power switch is provided. The switch controls power to the laser.
- (29) In yet another variant, the power switch is mounted on the housing.
- (30) In a final variant of the invention, the power switch is integral with the trigger. Initial rearward movement of the trigger completes a circuit within the power switch, thereby providing the laser aiming spot prior to activation of the compressed gas release mechanism.
- An appreciation of the other aims and objectives of the present invention and an understanding of it may be achieved by referring to the accompanying drawings and the detailed description of a preferred embodiment.
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Figure 1 is a perspective view of the preferred embodiment of the invention including an illustration of the magazine and sight glass; -
Figure 1 is a side elevation of theFigure 1 embodiment illustrating the flattened lower surfaces of the pistol grip and forearm and the external safety; -
Figure 3 is a side elevational cross-section of theFigure 1 embodiment illustrating the projectile loading mechanism in the firing position; -
Figure 3A is a partial side elevational cross-section of theFigure 1 embodiment illustrating details of the trigger and latching mechanism; -
Figure 3B is an orthogonal cross-sectional detailed view of the projectile storage magazine and projectile loading mechanism in the firing position taken along theline 3C-3C; -
Figure 3C is an orthogonal cross-sectional detailed view of the projectile storage magazine and projectile loading mechanism in the projectile loading position taken along theline 3C-3C; -
Figure 4 is a side elevational cross-section of theFigure 1 embodiment illustrating the projectile loading mechanism in the loading position; -
Figure 4A is an enlarged side elevational cross-section of theFigure 1 embodiment illustrating the projectile loading mechanism in the firing position with the subordination pole and metering slot in lowered position; -
Figure 4B is an enlarged side elevational cross-section of theFigure 1 embodiment illustrating the projectile loading mechanism in the loading position with the subordination pole and metering slot in raised position; -
Figure 5 is a partial side elevational cross-section of theFigure 1 embodiment further illustrating details of the trigger and latching mechanism in the cocked position and illustrating the sight/firing ready indicator in the elevated position; -
Figure 6 is a partial side elevational cross-section of theFigure 1 embodiment further illustrating details of the trigger and latching mechanism in the firing position and illustrating the sight/firing ready indicator in the lowered position; -
Figure 7 is a side cross-sectional view of the manual safety in the safe position illustrating the blocking of movement of the trigger; -
Figure 8 is a side cross-sectional view of the manual safety in the fire position illustrating the unblocking of movement of the trigger prior to firing; -
Figure 9 is a side cross-sectional view of the manual safety in the fire position illustrating rearward movement of the trigger during firing; -
Figure 10 is a side cross-sectional view of theFigure 1 embodiment illustrating the spring-activated compressed gas chamber as the bug gun is firing; -
Figure 11 is a side cross-sectional view of theFigure 1 embodiment illustrating the spring-activated compressed gas chamber with the bug gun in cocked position; -
Figure 12 is a side cross-sectional view of a CO2 powered embodiment of the bug gun illustrating the metering device and latching mechanism in the cocked position; -
Figure 13 is a side cross-sectional view of theFigure 12 embodiment of bug gun illustrating the metering device and latching mechanism in the fired position; -
Figure 14 is a side cross-sectional view of a refillable air cylinder powered embodiment of the bug gun illustrating attachment of the cylinder and connection to the metering device; -
Figure 15 is a side cross-sectional view of an external compressed gas line powered embodiment of the bug gun illustrating attachment of the gas line and connection to the metering device; -
Figure 16 is a side cross-sectional view of a pneumatically pump powered embodiment of the bug gun illustrating the pumping mechanism and valving connecting to the metering device; -
Figure 17 is a side elevational view of theFigure 1 embodiment with integral laser sighting device; -
Figure 17A is a detailed view of a trigger-operated on/off switch; and -
Figure 18 is an exploded perspective view of a removable version of the laser sighting device including details of the assembly and aiming controls. -
- (1)
Figures 1-11 illustrate an improvedbug killing gun 10 providing the desired features that may be constructed from the following components. As illustrated inFigures 10 and11 , acompressed gas source 14 is provided. Achamber 18 is provided. Thechamber 18 is fluidly connected to the compressedgas source 14. Abarrel 22 is provided. Thebarrel 22 is located at adistal end 26 of thechamber 18. As illustrated inFigures 5 and6 , a compressedgas release mechanism 30 is provided. Therelease mechanism 30 is connected to the compressedgas source 14. As illustrated inFigures 1-4 ,10 and 11, aprojectile storage magazine 34 is provided. Themagazine 34 stores particulateprojectiles 38 and is located adjacent thechamber 18. Aprojectile loading mechanism 42 is provided. Theloading mechanism 42 moves theparticulate projectiles 38 into thechamber 18 from themagazine 34. Acocking mechanism 46 is mechanically connected to the compressedgas source 14, the compressedgas release mechanism 30, and theprojectile loading mechanism 42. As illustrated inFigures 7-9 , a primaryautomatic safety mechanism 54 is provided. Theprimary safety mechanism 54 moves to an activatedposition 62 upon utilization of thecocking mechanism 46 and moves to a deactivatedposition 58 when manually deactivated by a user. The status of the primary 54 safety mechanism is displayed by movement of a primaryexternal safety lever 66 from a first,safe position 70 to a second, firingposition 74, as illustrated inFigure 2 . Astock 50 is provided. Thestock 50 houses and supports the compressedgas source 14, the compressedgas release mechanism 30, thebarrel 22, thechamber 18, theprojectile storage magazine 34, thecocking mechanism 46 and theprojectile loading mechanism 42. When thegun 10 is cocked by thecocking mechanism 46, theprojectile loading mechanism 42 gathers a predetermined quantity of theparticulate projectiles 38 and positions theprojectiles 38 in thechamber 18. When the compressedgas release mechanism 30 is activated theprojectiles 38 are ejected from thechamber 18 into thebarrel 22 and expelled from thegun 10. - (2) In a variant of the invention, as illustrated in
Figures 1 ,2 ,3A ,5 and6 , asecondary safety indicator 78 is provided. Thesecondary safety indicator 78 is moved from ahidden position 82 to avisible position 86 by the gun cocking action and is moved to thehidden position 82 by activation of the compressedgas release mechanism 30. - (3) In another variant, the compressed
gas source 14 is selected from the group that includes aprefilled CO2 cartridge 88 as illustrated inFigures 12 and13 , a refillablecompressed gas cylinder 90 as illustrated inFigure 14 , a pneumatically pumpedair reservoir 94 as illustrated inFigure 16 , a spring-activatedcompressed gas chamber 98, as illustrated inFigures 10 and11 , and an externalcompressed gas line 102 as illustrated inFigure 15 . - (4) In still another variant, as illustrated in
Figures 10 and11 , the spring-activatedcompressed gas chamber 98 further includes acylinder 106. Thecylinder 106 has afront end 110 and arear end 114 and is fluidly connected to thechamber 18 at thefront end 110. Apiston 118 is provided. Thepiston 118 fits sealably in thecylinder 106 and is located within it. Acompression spring 122 is provided. Thecompression spring 122 urges thepiston 118 toward thefront end 110. Aspring compression mechanism 126 is provided. Thecompression mechanism 126 urges thepiston 118 towards therear end 114 and compresses thespring 122. As illustrated inFigures 5 and6 , alatching mechanism 130 is provided. Thelatching mechanism 130 releasably retains thepiston 118 adjacent therear end 114 and retains thecompression spring 122 in acompressed state 134. A user performs the gun cocking action, thespring compression mechanism 126 is operated, thepiston 118 is urged toward therear end 114 of thecylinder 106, thespring 122 is compressed and thespring 122 and thepiston 118 are retained by thelatching mechanism 130 until released, allowing thepiston 118 to move rapidly toward thefront end 110 of thecylinder 106. This provides a burst ofcompressed gas 138 in thecylinder 106 and to theconnected chamber 18. - (5) In yet another variant, as illustrated in
Figures 5 and6 , the compressedgas release mechanism 30 further includes atrigger 142. Thetrigger 142 is urged forward by atrigger return spring 146. Thetrigger 142 has anupper protrusion 150. Theupper protrusion 150 engages aninternal safety pivot 154. Thesafety pivot 154 prevents release of thelatching mechanism 130 unless the cocking action is completed. Thetrigger 142 has an elevatingramp 158 located rearwardly of theupper protrusion 150. The elevatingramp 158 urges a releasingbracket 162 of thelatching mechanism 130 upwardly against a downwardly urgingcompression spring 166 as thetrigger 142 is moved rearwardly. The releasingbracket 162 moves slidably within avertical channel 170 in the supportingstock 50 and has a downwardly facingrib 174. Therib 174 releasably engages an upwardly facingcontrol notch 178 in amain pole 182 of thelatching mechanism 130.
As illustrated inFigures 10 and11 , themain pole 182 is attached to thepiston 118, has an upwardlyangled ramp 186 at arear end 190, located behind thecontrol notch 178. Theramp 186 guides therib 174 into thecontrol notch 178. Themain pole 182 moves rearwardly in achannel 194 in the supportingstock 50 during the cocking action, as illustrated inFigures 3A ,5 and6 . The releasingbracket 162 retains themain pole 182 in a first,cocked position 198 as therib 174 engages thecontrol notch 178. Thebracket 162 releases themain pole 182 to a second, firedposition 202 as thetrigger 142 is moved rearwardly, elevating the releasingbracket 162 and raising therib 174 from thecontrol notch 178. This allows themain pole 182 and thepiston 118 to move forward as urged by thetension spring 122, pressurizing thecylinder 106. - (6) In a further variant, as illustrated in
Figures 3B, 3C ,10 and11 , theprojectile storage magazine 34 further includes aconical container 206. Thecontainer 206 has acircular opening 210 at alower end 214. Thelower end 214 is fitted sealably to anupper end 218 of a verticalcircular opening 222 through thechamber 18. Thecontainer 206 has a sealinglid 226 removably or hingedly attached at anupper end 230. - (7) In still a further variant, as illustrated in
Figure 3C , thelower end 214 is fitted sealably to anupper end 218 of a verticalcircular opening 222 through thechamber 18 with a sealingwasher 224. - (8) In yet a further variant, as illustrated in
Figures 3 ,3B ,3C ,4 ,4A ,4B ,10 and11 , theprojectile loading mechanism 42 further includes ametering rod 234. Themetering rod 234 is sized and shaped to fit sealably through the verticalcircular opening 222 through thechamber 18 and has anorthogonal activation bar 238 extending from itslower end 242 and a throughhole 246 located above theactivation bar 238. The throughhole 246 is orthogonal to thebar 238 andmetering rod 234 and sized and located to align with thechamber 18 when thebar 238 is positioned against a stoppingsurface 250. Theactivation bar 238 is urged upwardly by areturn compression spring 254 to rest against alower end 258 of the verticalcircular opening 222 in thechamber 18.
The throughhole 246 fills with theparticulate projectiles 38 when located above thechamber 18 in theconical container 206 during the cocking action. Theactivation bar 238 is urged downwardly by a pivotally mountedsubordination pole 262 to rest against the stoppingsurface 250 just after activation of the compressedgas release mechanism 30. This permits thecompressed gas 138 to eject theparticulate projectiles 38 from thechamber 18 and through thebarrel 22. - (9) In another variant of the invention, the
projectile loading mechanism 42 further includes amid-chamber pipe 266. Thepipe 266 extends downwardly from alower end 258 of themagazine 34. Alower portion 282 of thepipe 266 provides astop 286 for oneend 290 of areturn compression spring 254. Atrajectory guide 298 is provided. Theguide 298 is located below thelower end 258 of themagazine 34, has ahollow bore 302 sized to fit slidably about thepipe 266 and has avertical slot 306 that extends downwardly from thelower end 258 for a firstpredetermined distance 308. Theslot 306 terminates in a stoppingsurface 250. Thetrajectory guide 298 is located about thepipe 266 and provides asupport platform 310 for attachment of theprojectile storage magazine 34. Ametering rod 234 is provided. Therod 234 is cylindrical in shape and is sized to fit slidably within thepipe 266 and has anorthogonal activation bar 238 extending from itslower end 242. Themetering rod 234 has a throughhole 246 located above theactivation bar 238. The throughhole 246 is orthogonal to thebar 238 and themetering rod 234 and sized and located to align with thechamber 18 when thebar 238 is positioned against the stoppingsurface 250. Areturn compression spring 254 urges themetering rod 234 upwardly to rest against alower end 258 of the verticalcircular opening 222 in thechamber 18. Asubordination pole 262 is provided. Thepole 262 has afirst end 314 and asecond end 318 and is pivotally mounted to acover 322 for the compressedgas source 14. Thefirst end 314 of thesubordination pole 262 includes ametering slot 264 that surroundsactivation bar 238. Thesecond end 318 of thesubordination pole 262 is urged upwardly by acam 330 upon activation of thegas release mechanism 30. Upward movement of thesecond end 318 of thesubordination pole 262 moves theactivation bar 238 downwardly, compresses thereturn compression spring 254 and aligns the throughhole 246 of themetering rod 234 with thechamber 18. This permits thecompressed gas 138 to drive theparticulate projectiles 38 out of thechamber 18 and through thebarrel 22. Downward movement of thesecond end 318 of thesubordination pole 262 causes theactivation bar 238 to move upwardly as urged by thereturn compression spring 254. This allows theparticulate projectiles 38 to fill the throughhole 246 of themetering rod 234 as it moves in theprojectile storage magazine 34 surrounded by theparticulate projectiles 38. - (10) In still another variant, as illustrated in
Figures 3 ,4 ,4A ,10 and11 , thespring compression mechanism 126 further includes aprimary gear rack 334. Thegear rack 334 is slidably located in achannel 338 in the supportingstock 50, hasgear teeth 342 located upon anupper surface 346 and has mountingfixtures 350 adjacent aforward end 354 for attachment of aslide handle 358. Areduction gear drive 362 is provided. Thegear drive 362 is mounted to anouter cover 322 of thecylinder 106. Asecondary gear rack 370 is provided. Thesecondary rack 370 is attached indirectly to thepiston 118 and is located slidably in a slot (not shown) in theouter cover 322 above thereduction gear drive 362. Theprimary gear rack 334 engages thereduction gear drive 362 and thereduction gear drive 362 engages thesecondary gear rack 370. Rearward movement of the slide handle 358 moves the primary gear rack rearward 334, rotates thereduction gear drive 362, moves thesecondary gear rack 370 rearward and moves thepiston 118 rearward, compressing thecompression spring 122. - (11) In yet another variant, as illustrated in
Figures 4A and4B , a downwardpointing cam lobe 268 is provided. Thecam lobe 268 is located beneath and orthogonal to themetering slot 264. Acam activating tab 272 is provided. Thetab 272 is located adjacent to aside edge 276 andfront end 280 of anupper surface 284 of theprimary gear rack 334. The activatingtab 272 has a contouredinner surface 288. The contouredinner surface 288 is sized, shaped and located to engage afront edge 292 of thecam lobe 268 as theprimary gear rack 334 is moved rearwardly and forwardly during operation of thecocking mechanism 46. Engagement of thecam lobe 268 causes upward movement of themetering rod 234 followed by downward movement of themetering rod 234 during operation of thecocking mechanism 46. Such movement serving to dislodge anyparticulate projectiles 38 adhering to themetering rod 234. - (12) In a further variant, engagement of the
cam lobe 268 by thecam activating tab 272 during forward movement of theprimary gear rack 334 during operation of thecocking mechanism 46 provides an auditory confirmation of completion of the operation. - (13) In still a further variant, as illustrated in
Figures 3 ,3A and4 , acontrol slot 348, moving in concert withmain pole 182 maintains afirst end 374 of aninternal safety pivot 154 in anelevated position 378 during rearward movement of saidcontrol slot 348. This causes asecond end 382 of thepivot 154, which has a downward facingnotch 386, to engage anupper protrusion 150 at anupper end 390 of atrigger 142 of the compressedgas release mechanism 30, thereby preventing activation of themechanism 30. Thecontrol slot 348 causes downward movement of theinternal safety pivot 154, upon completion of forward movement of theprimary gear rack 334 and saidcontrol slot 348. The downward movement permits release of the downward facingnotch 386 from thetrigger 142 and permits activation of thegas release mechanism 30. - (14) In yet a further variant, as illustrated in
Figures 1 and2 , thesupport stock 50 further includes asight glass 422. Thesight glass 422 is positioned adjacent themagazine 34 and permits a view of alevel 426 of theparticulate projectiles 38 contained in themagazine 34. - (15) In another variant, as illustrated in
Figures 12 and13 , thegun 10 uses aprefilled CO2 cartridge 88 as acompressed gas source 14 and thegun 10 further includes acylindrical cartridge chamber 434. Thecartridge chamber 434 is sized and shaped to enclose theCO2 cartridge 88 and has asealable opening 438 at afirst end 442 for introduction of thecartridge 88. Aconcave seat 446 located at asecond end 450 is provided. Theseat 446 is sized and shaped to fit sealably about a dischargingend 454 of thecartridge 88. Ahollow puncturing needle 458 is located within theseat 446 and a one-way valve 462 is fluidly connected to the puncturingneedle 458. A sealingcap 466 is provided. Thecap 466 is removably attached to thecartridge chamber 434 bymating screw threads 470. Tightening of thecap 466 urges thecartridge 88 against the puncturingneedle 458. Apressure vessel 474 is provided. Thepressure vessel 474 is fluidly connected to ametering device 478. Themetering device 478 permits a predetermined charge ofcompressed gas 138 to enter thechamber 18 upon activation of the compressedgas release mechanism 30. - (16) In still another variant, as illustrated in
Figures 3A ,5 ,6 ,12 and13 , the compressedgas release mechanism 30 further includes atrigger 142. Thetrigger 142 is urged forward by atrigger return spring 146. The trigger has anupper protrusion 150. Theupper protrusion 150 engages aninternal safety pivot 154. Thesafety pivot 154 prevents activation of the compressedgas release mechanism 30 unless the cocking action is completed. Thetrigger 142 has an elevatingramp 158 located rewardly of theupper protrusion 150. The elevatingramp 158 urges a releasingbracket 162 of thelatching mechanism 130 upwardly against a downwardly urgingcompression spring 166 as thetrigger 142 is moved rearwardly. The releasingbracket 162 moves slidably within avertical channel 170 in the supportingstock 50 and has a downwardly facingrib 174. Therib 174 releasably engages an upwardly facingcontrol notch 482 in aloading rod 486. Theloading rod 486 is urged forward by aloading coil spring 490, has an upwardlyangled ramp 494 at arear end 498, located behind thecontrol notch 482. Theramp 494 guides therib 174 into thecontrol notch 482.
Theloading rod 486 moves rearwardly in a channel (not shown) in the supportingstock 50 during the cocking action. The releasingbracket 162 retains theloading rod 486 in a first,cocked position 502 as therib 174 engages thecontrol notch 482. The releasingbracket 162 releases theloading rod 486 to a second, firedposition 506 as thetrigger 142 is moved rearwardly, elevating the releasingbracket 162 and raising therib 174 from thecontrol notch 482. This allows theloading rod 486 to move forward as urged by theloading coil spring 490. Theloading rod 486 activates theprojectile loading mechanism 42 and themetering device 478. - (17) In yet another variant of the invention, as illustrated in
Figure 16 , thegun 10 uses a pneumatically pumpedair reservoir 94 as acompressed gas source 14 and thegun 10 further includes agas cylinder 514. Thecylinder 514 has aninlet valve 518 and anoutlet valve 522. Apiston 526 is provided. Thepiston 526 fits sealably within thecylinder 514. Apumping mechanism 530 is provided. Thepumping mechanism 530 is mechanically linked to thepiston 526 and moves thepiston 526 from anextended position 534 to acompressed position 538 within thecylinder 514. Theinlet valve 518 is in anopen position 542 as thepiston 526 moves from thecompressed position 538 to theextended position 534 and is in a closed position (not shown) as thepiston 526 moves from theextended position 534 to thecompressed position 538. Theoutlet valve 522 is in aclosed position 550 as the piston moves 526 from thecompressed position 538 to theextended position 534 and is in an open position (not shown) as thepiston 526 moves from theextended position 534 to thecompressed position 538.
Theair reservoir 94 is fluidly connected to theoutlet valve 522 and saidchamber 18. Theprojectile loading mechanism 42 permits a predetermined charge ofcompressed gas 138 to enter thechamber 18 upon activation of the compressedgas release mechanism 30. Repeated movement of thepiston 526 by thepumping mechanism 530 from theextended position 534 to thecompressed position 538 within thecylinder 514 will increase pressure within theair reservoir 94, permitting theparticulate projectiles 38 to be ejected from thechamber 18 with increased force upon release of the pressure by the compressedgas release mechanism 30. - (18) In a further variant, as illustrated in
Figures 3A ,5 ,6 ,12 and13 , the compressedgas release mechanism 30 further includes atrigger 142. Thetrigger 142 is urged forward by atrigger return spring 146. The trigger has anupper protrusion 150. Theupper protrusion 150 engages aninternal safety pivot 154. Thesafety pivot 154 prevents activation of the compressedgas release mechanism 30 unless the cocking action is completed. Thetrigger 142 has an elevatingramp 158 located rearwardly of theupper protrusion 150. The elevatingramp 158 urges a releasingbracket 162 of thelatching mechanism 130 upwardly against a downwardly urgingcompression spring 166 as thetrigger 142 is moved rearwardly. The releasingbracket 162 moves slidably within avertical channel 170 in the supportingstock 50 and has a downwardly facingrib 174. Therib 174 releasably engages an upwardly facingcontrol notch 482 in aloading rod 486. Theloading rod 486 is urged forward by aloading coil spring 490, has an upwardlyangled ramp 494 at arear end 498, located behind thecontrol notch 482. Theramp 494 guides therib 174 into thecontrol notch 482.
Theloading rod 486 moves rearwardly in achannel 498 in the supportingstock 50 during the cocking action. The releasingbracket 162 retains theloading rod 486 in a first,cocked position 502 as therib 174 engages thecontrol notch 482. The releasingbracket 162 releases theloading rod 486 to a second, firedposition 506 as thetrigger 142 is moved rearwardly, elevating the releasingbracket 162 and raising therib 174 from thecontrol notch 482. This allows theloading rod 486 to move forward as urged by theloading coil spring 490. Theloading rod 486 activates theprojectile loading mechanism 42. and themetering device 478. - (19) In still a further variant, as illustrated in
Figure 14 , thegun 10 uses a refillablecompressed gas cylinder 90 as acompressed gas source 14. Thecylinder 90 has a shut offvalve 574 and an attachment fitting 578 located adjacent afirst end 582. A mating attachment fitting 586 is provided. Themating fitting 586 is mounted to thesupport stock 50 and is fluidly connected to ametering device 478. Themetering device 478 is fluidly connected to thechamber 18 and themetering device 478 permits a predetermined charge ofcompressed gas 138 to enter thechamber 18 upon activation of the compressedgas release mechanism 30. A charged refillable compressedgas cylinder 90 is attached to the mating attachment fitting 586, the shut offvalve 574 is opened and thecompressed gas 138 is released by themetering device 478 upon activation of the compressedgas release mechanism 30. - (20) In yet a further variant, as illustrated in
Figures 3A ,5 ,6 ,12 and13 , the compressedgas release mechanism 30 further includes atrigger 142. Thetrigger 142 is urged forward by atrigger return spring 146. The trigger has anupper protrusion 150. Theupper protrusion 150 engages aninternal safety pivot 154. Thesafety pivot 154 prevents activation of the compressedgas release mechanism 30 unless the cocking action is completed. Thetrigger 142 has an elevatingramp 158 located rearwardly of theupper protrusion 150. The elevatingramp 158 urges a releasingbracket 162 of thelatching mechanism 130 upwardly against a downwardly urgingcompression spring 166 as thetrigger 142 is moved rearwardly. The releasingbracket 162 moves slidably within avertical channel 170 in the supportingstock 50 and has a downwardly facingrib 174. Therib 174 releasably engages an upwardly facingcontrol notch 482 in aloading rod 486. Theloading rod 486 is urged forward by aloading coil spring 490, has an upwardlyangled ramp 494 at arear end 498, located behind thecontrol notch 482. Theramp 494 guides therib 174 into thecontrol notch 482.
Theloading rod 486 moves rearwardly in achannel 498 in the supportingstock 50 during the cocking action. The releasingbracket 162 retains theloading rod 486 in a first,cocked position 502 as therib 174 engages thecontrol notch 482. The releasingbracket 162 releases theloading rod 486 to a second, firedposition 506 as thetrigger 142 is moved rearwardly, elevating the releasingbracket 162 and raising therib 174 from thecontrol notch 482. This allows theloading rod 486 to move forward as urged by theloading coil spring 490. Theloading rod 486 activates theprojectile loading mechanism 42 and themetering device 478. - (21) In another variant, as illustrated in
Figure 15 , thegun 10 uses an externalcompressed gas line 102 as acompressed gas source 14. Theline 102 is connected to a compressedgas source 592 and has a shut offvalve 594 and an attachment fitting 598 located adjacent afirst end 602. A mating attachment fitting 606 is provided. Themating fitting 606 is mounted to thesupport stock 50 and is fluidly connected to ametering device 478. Themetering device 478 is fluidly connected to thechamber 18. Themetering device 478 permits a predetermined charge ofcompressed gas 138 to enter thechamber 18 upon activation of the compressedgas release mechanism 30. The externalcompressed gas line 102 is attached to the mating attachment fitting 606, the shut offvalve 594 is opened and thecompressed gas 138 is released by themetering device 478 upon activation of the compressedgas release mechanism 30. - (22) In still another variant, as illustrated in
Figures 3A ,5 ,6 ,9 ,12 and13 , the compressedgas release mechanism 30 further includes atrigger 142. Thetrigger 142 is urged forward by atrigger return spring 146. The trigger has anupper protrusion 150. Theupper protrusion 150 engages aninternal safety pivot 154. Thesafety pivot 154 prevents activation of the compressedgas release mechanism 30 unless the cocking action is completed. Thetrigger 142 has an elevatingramp 158 located rearwardly of theupper protrusion 150. The elevatingramp 158 urges a releasingbracket 162 of thelatching mechanism 130 upwardly against a downwardly urgingcompression spring 166 as thetrigger 142 is moved rearwardly. The releasingbracket 162 moves slidably within avertical channel 170 in the supportingstock 50 and has a downwardly facingrib 174. Therib 174 releasably engages an upwardly facingcontrol notch 482 in aloading rod 486. Theloading rod 486 is urged forward by aloading coil spring 490, has an upwardlyangled ramp 494 at arear end 498, located behind thecontrol notch 482. Theramp 494 guides therib 174 into thecontrol notch 482.
Theloading rod 486 moves rearwardly in achannel 498 in the supportingstock 50 during the cocking action. The releasingbracket 162 retains theloading rod 486 in a first,cocked position 502 as therib 174 engages thecontrol notch 482. The releasingbracket 162 releases theloading rod 486 to a second, firedposition 506 as thetrigger 142 is moved rearwardly, elevating the releasingbracket 162 and raising therib 174 from thecontrol notch 482. This allows theloading rod 486 to move forward as urged by theloading coil spring 490. Theloading rod 486 activates theprojectile loading mechanism 42 and themetering device 478. - (23) In yet another variant, as illustrated in
Figure 2 , apistol grip 610 and aforearm 614 of thesupport stock 50 have flattenedlower surfaces bug killing gun 10 to be balanced in anupright position 626 for adding theparticulate projectiles 38 to theprojectile storage magazine 34. - (24) In a further variant of the invention, as illustrated in
Figures 17,17A and18 , the improvedbug killing gun 10 further includes alaser sighting device 630. Thelaser sighting 630 device includes a battery poweredlaser 634. Thelaser 634 is capable of producing alaser aiming spot 638. Ahousing 642 is provided. Thehousing 642 is adapted to contain thelaser 634, abattery power source 646 and acontrol circuit 650 for thelaser 634. Anattachment mechanism 654 is provided. Theattachment mechanism 654 is adapted to attach thelaser sighting device 630 adjacent adistal end 658 of thebarrel 22. - (25) In still a further variant, as illustrated in
Figure 17 , theattachment mechanism 654 is integrally formed with thedistal end 658 of thebarrel 22. - (26) In yet a further variant, as illustrated in
Figures 18 , theattachment mechanism 654 is adapted to removably attach thelaser sighting device 630 to thedistal end 658 of thebarrel 22. - (27) In another variant, the
laser sighting device 630 includeselevation 662 andwindage 666 adjustments for an aimingpoint 670 of thelaser aiming spot 638. - (28) In still another variant, a
power switch 674 is provided. Theswitch 674 controls power to thelaser 634. - (29) In yet another variant, the
power switch 674 is mounted on thehousing 642. - (30) In a final variant of the invention, as illustrated in
Figures 17 and 17A , thepower switch 674 is integral with thetrigger 142. Initial rearward movement of thetrigger 142 completes acircuit 678 within thepower switch 674, thereby providing thelaser aiming spot 638 prior to activation of the compressedgas release mechanism 30. - The present invention is further described by the following items:
- Item 1: An improved bug killing gun, comprising:
- a compressed gas source,
- a chamber, said chamber fluidly connected to said compressed gas source;
- a barrel, said barrel disposed at a distal end of said chamber;
- a compressed gas release mechanism, said release mechanism connected to said compressed gas source;
- a projectile storage magazine, said magazine storing particulate projectiles and being disposed adjacent said chamber;
- a projectile loading mechanism, said loading mechanism moving said particulate projectiles into said chamber from said magazine;
- a cocking mechanism mechanically connecting said compressed gas source, said compressed gas release mechanism, and said projectile loading mechanism;
- a primary automatic safety mechanism, said primary safety mechanism moving to an activated position upon utilization of said cocking mechanism and moving to a deactivated position when manually deactivated by a user, status of said primary safety mechanism being displayed by movement of a primary external safety lever from a first, safe position to a second, firing position;
- a stock, said stock housing and supporting said compressed gas source, said compressed gas release mechanism, said barrel, said chamber, said projectile storage magazine, said cocking mechanism and said projectile loading mechanism;
- wherein, when said gun is cocked by said cocking mechanism, said projectile loading mechanism gathers a predetermined quantity of said particulate projectiles and positions said projectiles in said chamber;
- and when said compressed gas release mechanism is activated said projectiles are ejected from said chamber into said barrel and expelled from said gun.
- Item 2: The improved bug killing gun, as described in
item 1, further comprising a secondary safety indicator, said secondary safety indicator being moved from a hidden position to a visible position by upon utilization of said cocking mechanism and being moved to said hidden position by activation of said compressed gas release mechanism. - Item 3: The improved bug killing gun, as described in
item 1, wherein said compressed gas source is selected from the group comprising:
a prefilled CO2 cartridge, a refillable compressed gas cylinder, a pneumatically pumped gas reservoir, a spring-activated compressed gas chamber and an external compressed gas line. - Item 4: The improved bug killing gun, as described in item 3, wherein said spring-activated compressed gas chamber further comprises:
- a cylinder, said cylinder having a front end and a rear end and being fluidly connected to said chamber at said front end;
- a piston, said piston fitting sealably in said cylinder and being disposed therein;
- a compression spring, said compression spring urging said piston toward said front end;
- a spring compression mechanism, said compression mechanism urging said piston towards said rear end and compressing said compression spring;
- a latching mechanism, said latching mechanism releasably retaining said piston adjacent said rear end and retaining said compression spring in a compressed state; and
- wherein a user operates said cocking mechanism, said spring compression mechanism is operated, said piston is urged toward said rear end of said cylinder, said spring is compressed and said spring and said piston are retained by said latching mechanism until released allowing said piston to move rapidly toward said front end of said cylinder, providing a burst of compressed gas in said cylinder and to said connected chamber.
- Item 5: The improved bug killing gun, as described in item 4, wherein said compressed gas release mechanism further comprises:
- a trigger, said trigger being urged forward by a trigger return spring;
- said trigger having an upper protrusion, said upper protrusion engaging an internal safety pivot, said safety pivot preventing release of said latching mechanism unless operation of said cocking mechanism is completed;
- said trigger having an elevating ramp disposed rearwardly of said upper protrusion, said elevating ramp urging a releasing bracket of said latching mechanism upwardly against a downwardly urging compression spring as said trigger is moved rearwardly;
- said releasing bracket moving slidably within a vertical channel in said supporting stock and having a downwardly facing rib, said rib releasably engaging an upwardly facing control notch in a main pole of said latching mechanism;
- said main pole being attached to said piston, having an upwardly angled ramp at a rear end, disposed behind said control notch, said ramp guiding said rib into said control notch, said main pole moving rearwardly in a channel in said supporting stock during operation of said cocking mechanism; and
- said releasing bracket retaining said main pole in a first, cocked position as said rib engages said control notch and releasing said main pole to a second, fired position as said trigger is moved rearwardly elevating said releasing bracket and raising said rib from said control notch, allowing said main pole and said piston to move forward as urged by said compression spring, pressurizing said cylinder.
- Item 6: The improved bug killing gun, as described in
item 1, wherein said projectile storage magazine further comprises:- a conical container, said container having a circular opening at a lower end;
- said lower end fitted sealably to an upper end of a vertical circular opening through said chamber; and
- said container having a sealing lid removably or hingedly attached at an upper end.
- Item 7: The improved bug killing gun, as described in item 6, wherein said lower end is fitted sealably to said upper end of said vertical circular opening through said chamber with a sealing washer.
- Item 8: The improved bug killing gun, as described in item 6, wherein said projectile loading mechanism further comprises:
- a metering rod, said metering rod being sized and shaped to fit sealably through said vertical circular opening through said chamber and having an orthogonal activation bar extending from a lower end thereof and a through hole disposed above said activation bar, said through hole being orthogonal to said bar and said metering rod and sized and disposed to align with said chamber when said bar is positioned against a stopping surface;
- said activation bar being urged upwardly by a return compression spring to rest against said lower end of said vertical circular opening in said chamber;
- said through hole filling with said particulate projectiles when disposed above said chamber in said conical container during operation of said cocking mechanism; and said activation bar being urged downwardly by a pivotally mounted subordination pole to rest against said stopping surface just after activation of said compressed gas release mechanism, permitting said compressed gas to eject said particulate projectiles from said chamber and through said barrel.
- Item 9: The improved bug killing gun, as described in item 8, wherein said projectile loading mechanism further comprises:
- a mid-chamber pipe, said pipe extending downwardly from a lower end of said magazine;
- a lower portion of said pipe providing a stop for one end of a return compression spring; a trajectory guide, said guide disposed below said magazine, having a hollow bore sized to fit slidably about said pipe and having a vertical slot extending downwardly from said lower end for a first predetermined distance and terminating in a stopping surface; said trajectory guide being disposed about said pipe and providing a support platform for attachment of said projectile storage magazine;
- a metering rod, said rod being cylindrical in shape and being sized to fit slidably within said pipe and having an orthogonal activation bar extending from a lower end thereof and a through hole disposed above said activation bar, said through hole being orthogonal to said bar and said metering rod and sized and disposed to align with said chamber when said bar is positioned against said stopping surface;
- said return compression spring urging said metering rod upwardly to rest against said lower end of said vertical circular opening in said chamber; and a subordination pole, said pole having a first end and a second end, being pivotally mounted to a cover for said compressed gas source, said first end comprising a metering slot, said metering slot surrounding said activation bar, said second end being urged upwardly by a cam upon activation of said gas release mechanism;
- wherein upward movement of said second end of said subordination pole moves said activation bar downwardly, compressing said return compression spring and aligning said through hole of said metering rod with said chamber, permitting said compressed gas to drive said particulate projectiles out of said chamber and through said barrel; wherein downward movement of said second end of said subordination pole causes said activation bar to move upwardly as urged by said return compression spring, said particulate projectiles filling said through hole of said metering rod as it moves in said projectile storage magazine surrounded by said particulate projectiles.
- Item 10: The improved bug killing gun, as described in item 9, wherein said spring compression mechanism further comprises:
- a primary gear rack, said gear rack being slidably disposed in a channel in said supporting stock, having gear teeth disposed upon an upper surface and having mounting fixtures adjacent a forward end for attachment of a slide handle;
- a reduction gear drive, said gear drive mounted to an outer cover of said cylinder;
- a secondary gear rack, said secondary rack attached indirectly to said piston and being disposed slidably in a slot in said outer cover above said reduction gear drive;
- said primary gear rack engaging said reduction gear drive and said reduction gear drive engaging said secondary gear rack; and
- wherein rearward movement of said slide handle moves said primary gear rack rearward, rotates said reduction gear drive, moves said secondary gear rack rearward and moves said piston rearward, compressing said compression spring.
- Item 11: The improved bug killing gun, as described in
item 10, further comprising:- a downward pointing cam lobe, said cam lobe disposed beneath and orthogonal to said metering slot; a cam activating tab, said tab disposed adjacent a side edge and front end of an upper surface of said primary gear rack, said activating tab having a contoured inner surface;
- said contoured inner surface being sized, shaped and disposed to engage a front edge of said cam lobe as said primary gear rack is moved rearwardly and forwardly during operation of said cocking mechanism;
- engagement of said cam lobe causing upward movement of said metering rod followed by downward movement of said metering rod during operation of said cocking mechanism, such movement serving to dislodge any particulate projectiles adhering to said metering rod.
- Item 12: The improved bug killing gun, as described in item 11, wherein engagement of said cam lobe by said cam activating tab during forward movement of said primary gear rack during operation of said cocking mechanism provides an auditory confirmation of completion of said operation.
- Item 13: The improved bug killing gun, as described in
item 10, wherein:- a control slot, moving in concert with main pole, maintains a first end of an internal safety pivot in an elevated position during rearward movement of said control slot, causing a second end of said pivot, said second end having a downward facing notch, to engage an upper protrusion at an upper end of a trigger of said compressed gas release mechanism, thereby preventing activation of said mechanism; and
- said control slot causing downward movement of said internal safety pivot, upon completion of forward movement of said primary gear rack and said control slot, said downward movement permitting release of said downward facing notch from said trigger and permitting activation of said gas release mechanism.
- Item 14: The improved bug killing gun, as described in
item 1, wherein said support stock further comprises a sight glass, said sight glass positioned adjacent said magazine and permitting a view of a level of said particulate projectiles contained therein. - Item 15: The improved bug killing gun, as described in item 3, wherein said gun uses a prefilled CO2 cartridge as a compressed gas source, said gun further comprising:
- a cylindrical cartridge chamber, said cartridge chamber being sized and shaped to enclose the CO2 cartridge, having a sealable opening at a first end for introduction of said cartridge, a concave seat disposed at a second end, said seat being sized and shaped to fit sealably about a discharging end of said cartridge, a hollow puncturing needle disposed within said seat;
- a sealing cap, said cap being removably attached to said cartridge chamber by mating screw threads, tightening of said cap urging said cartridge against said puncturing needle;
- a pressure vessel, said pressure vessel being fluidly connected to a metering device; and said metering device permitting a predetermined charge of compressed gas to enter said chamber upon activation of said compressed gas release mechanism.
- Item 16: The improved bug killing gun, as described in item 15, wherein said compressed gas release mechanism further comprises:
- a trigger, said trigger being urged forward by a trigger return spring;
- said trigger having an upper protrusion, said upper protrusion engaging an internal safety pivot, said safety pivot preventing activation of said compressed gas release mechanism unless said cocking action is completed;
- said trigger having an elevating ramp disposed rearwardly of said upper protrusion, said elevating ramp urging a releasing bracket of said latching mechanism upwardly against a downwardly urging compression spring as said trigger is moved rearwardly;
- said releasing bracket moving slidably within a vertical channel in said supporting stock and having a downwardly facing rib, said rib releasably engaging an upwardly facing control notch in a loading rod;
- said loading rod being urged forward by a loading coil spring, having an upwardly angled ramp at a rear end, disposed behind said control notch, said ramp guiding said rib into said control notch, said loading rod moving rearwardly in a channel in said supporting stock during said cocking action; and
- said releasing bracket retaining said loading rod in a first, cocked position as said rib engages said control notch and releasing said loading rod to a second, fired position as said trigger is moved rearwardly elevating said releasing bracket and raising said rib from said control notch, allowing said loading rod to move forward as urged by said loading coil spring, said loading rod activating said projectile loading mechanism and said metering device.
- Item 17: The improved bug killing gun, as described in item 3, wherein said gun uses a pneumatically pumped air reservoir as a compressed gas source, said gun further comprising:
- a gas cylinder, said cylinder having an inlet valve and an outlet valve;
- a piston, said piston fitting sealably within said cylinder;
- a pumping mechanism, said pumping mechanism mechanically linked to said piston, and moving said piston from an extended position to a compressed position within said cy linder;
- said inlet valve being in an open position as said piston moves from said compressed position to said extended position and being in a closed position as said piston moves from said extended position to said compressed position;
- said outlet valve being in a closed position as said piston moves from said compressed position to said extended position and being in an open position as said piston moves from said extended position to said compressed position;
- said air reservoir being fluidly connected to said outlet valve and said chamber;
- said projectile loading mechanism permitting a predetermined charge of compressed gas to enter said chamber upon activation of said compressed gas release mechanism; and wherein repeated movement of said piston by said pumping mechanism from said extended position to said compressed position within said cylinder will increase pressure within said air reservoir, permitting said particulate projectiles to be ejected from said chamber with increased force upon release of said pressure by said compressed gas release mechanism.
- Item 18: The improved bug killing gun, as described in item 17, wherein said compressed gas release mechanism further comprises:
- a trigger, said trigger being urged forward by a trigger return spring;
- said trigger having an upper protrusion, said upper protrusion engaging an internal safety pivot, said safety pivot preventing activation of said compressed gas release mechanism unless said cocking action is completed;
- said trigger having an elevating ramp disposed rearwardly of said upper protrusion, said elevating ramp urging a releasing bracket of said latching mechanism upwardly against a downwardly urging compression spring as said trigger is moved rearwardly;
- said releasing bracket moving slidably within a vertical channel in said supporting stock and having a downwardly facing rib, said rib releasably engaging an upwardly facing control notch in a loading rod;
- said loading rod being urged forward by a loading coil spring, having an upwardly angled ramp at a rear end, disposed behind said control notch, said ramp guiding said rib into said control notch, said loading rod moving rearwardly in a channel in said supporting stock during said cocking action; and
- said releasing bracket retaining said loading rod in a first, cocked position as said rib engages said control notch and releasing said loading rod to a second, fired position as said trigger is moved rearwardly elevating said releasing bracket and raising said rib from said control notch, allowing said loading rod to move forward as urged by said loading coil spring, said loading rod activating said projectile loading mechanism.
- Item 19: The improved bug killing gun, as described in item 3, wherein said gun uses a refillable compressed gas cylinder as a compressed gas source, said gun further comprising:
- a refillable compressed gas cylinder, said cylinder having a shut off valve and an attachment fitting disposed adjacent a first end;
- a mating attachment fitting, said mating fitting mounted to said support stock and being fluidly connected to a metering device;
- said metering device being fluidly connected to said chamber and said metering device permitting a predetermined charge of compressed gas to enter said chamber upon activation of said compressed gas release mechanism; and
- wherein a charged refillable compressed gas cylinder is attached to said mating attachment fitting, said shut off valve is opened and said compressed gas is released by said metering device upon activation of said compressed gas release mechanism.
- Item 20: The improved bug killing gun, as described in item 19, wherein said compressed gas release mechanism further comprises:
- a trigger, said trigger being urged forward by a trigger return spring;
- said trigger having an upper protrusion, said upper protrusion engaging an internal safety pivot, said safety pivot preventing activation of said compressed gas release mechanism unless said cocking action is completed;
- said trigger having an elevating ramp disposed rearwardly of said upper protrusion, said elevating ramp urging a releasing bracket of said latching mechanism upwardly against a downwardly urging compression spring as said trigger is moved rearwardly;
- said releasing bracket moving slidably within a vertical channel in said supporting stock and having a downwardly facing rib, said rib releasably engaging an upwardly facing control notch in a loading rod;
- said loading rod being urged forward by a loading coil spring, having an upwardly angled ramp at a rear end, disposed behind said control notch, said ramp guiding said rib into said control notch, said loading rod moving rearwardly in a channel in said supporting stock during said cocking action; and
- said releasing bracket retaining said loading rod in a first, cocked position as said rib engages said control notch and releasing said loading rod to a second, fired position as said trigger is moved rearwardly elevating said releasing bracket and raising said rib from said control notch, allowing said loading rod to move forward as urged by said loading coil spring, said loading rod activating said projectile loading mechanism and said metering device.
- Item 21: The improved bug killing gun, as described in item 3, wherein said gun uses an external compressed gas line as a compressed gas source, said gun further comprising: an external compressed gas line, said line being connected to a compressed gas source and having a shut off valve and an attachment fitting disposed adjacent a first end; a mating attachment fitting, said mating fitting mounted to said support stock and being fluidly connected to a metering device;
- said metering device being fluidly connected to said chamber and said metering device permitting a predetermined charge of compressed gas to enter said chamber upon activation of said compressed gas release mechanism; and
- wherein said external compressed gas line is attached to said mating attachment fitting, said shut off valve is opened and said compressed gas is released by said metering device upon activation of said compressed gas release mechanism.
- Item 22: The improved bug killing gun, as described in item 21, wherein said compressed gas release mechanism further comprises:
- a trigger, said trigger being urged forward by a trigger return spring;
- said trigger having an upper protrusion, said upper protrusion engaging an internal safety pivot, said safety pivot preventing activation of said compressed gas release mechanism unless said cocking action is completed;
- said trigger having an elevating ramp disposed rearwardly of said upper protrusion, said elevating ramp urging a releasing bracket of said latching mechanism upwardly against a downwardly urging compression spring as said trigger is moved rearwardly;
- said releasing bracket moving slidably within a vertical channel in said supporting stock and having a downwardly facing rib, said rib releasably engaging an upwardly facing control notch in a loading rod;
- said loading rod being urged forward by a loading coil spring, having an upwardly angled ramp at a rear end, disposed behind said control notch, said ramp guiding said rib into said control notch, said loading rod moving rearwardly in a channel in said supporting stock during said cocking action; and
- said releasing bracket retaining said loading rod in a first, cocked position as said rib engages said control notch and releasing said loading rod to a second, fired position as said trigger is moved rearwardly elevating said releasing bracket and raising said rib from said control notch, allowing said loading rod to move forward as urged by said loading coil spring, said loading rod activating said projectile loading mechanism and said metering device.
- Item 23: The improved bug killing gun, as described in
item 1, wherein a pistol grip and a forearm of said support stock have flattened lower surfaces, said flattened surfaces permitting said bug killing gun to be balanced in an upright position for adding said particulate projectiles to said projectile storage magazine. - Item 24: The improved bug killing gun, as described in item 5, further comprising a laser sighting device, said laser sighting device comprising:
- a battery powered laser, said laser capable of producing a laser aiming spot;
- a housing, said housing adapted to contain said laser, a battery power source and a control circuit for said laser; and
- an attachment mechanism, said attachment mechanism adapted to attach said laser sighting device adjacent a distal end of said barrel.
- Item 25: The improved bug killing gun, as described in item 24, wherein said attachment mechanism is integrally formed with said distal end of said barrel.
- Item 26: The improved bug killing gun, as described in item 24, wherein said attachment mechanism is adapted to removably attach said laser sighting device to said distal end of said barrel.
- Item 27: The improved bug killing gun, as described in item 24, further comprising elevation and windage adjustments for an aiming point of said laser aiming spot.
- Item 28: The improved bug killing gun, as described in item 24, further comprising a power switch, said switch controlling power to said laser.
- Item 29: The improved bug killing gun, as described in item 24, wherein said power switch is mounted on said housing.
- Item 30: The improved bug killing gun, as described in item 24, wherein said power switch is integral with said trigger, wherein initial rearward movement of said trigger completes a circuit within said power switch, thereby providing said laser aiming spot prior to activation of said compressed gas release mechanism.
Claims (15)
- An improved bug killing gun (10), comprising:a compressed gas source (14),a chamber (18), said chamber (18) fluidly connected to said compressed gas source (14);a barrel (22), said barrel (22) disposed at a distal end (26) of said chamber (18);a compressed gas release mechanism (30), said release mechanism (30) connected to said compressed gas source (14);a projectile storage magazine (34), said magazine (34) storing particulate projectiles (38) and being disposed adjacent said chamber (18);a projectile loading mechanism (42), said loading mechanism (42) moving said particulate projectiles (38) into said chamber (18) from said magazine (34);a cocking mechanism (46) mechanically connecting said compressed gas source (14), said compressed gas release mechanism (30), and said projectile loading mechanism (42);a primary automatic safety mechanism (54), said primary safety mechanism (54) moving to an activated position (62) upon utilization of said cocking mechanism (46) and moving to a deactivated position (58) when manually deactivated by a user, status of said primary safety mechanism (54) being displayed by movement of a primary external safety lever (66) from a first, safe position (70) to a second, firing position (74);a stock (50), said stock (50) housing and supporting said compressed gas source (14), said compressed gas release mechanism (30), said barrel (22), said chamber (18), said projectile storage magazine (34), said cocking mechanism (46) and said projectile loading mechanism (42);wherein, when said gun (10) is cocked by said cocking mechanism (46), said projectile loading mechanism (42) gathers a predetermined quantity of said particulate projectiles (38) and positions said projectiles (38) in said chamber (18); and when said compressed gas release mechanism (30) is activated said projectiles (38) are ejected from said chamber (18) into said barrel (22) and expelled from said gun (10).
- The improved bug killing gun (10), as described in Claim 1, further comprising a secondary safety indicator (78), said secondary safety indicator (78) being moved from a hidden position (82) to a visible position (86) upon utilization of said cocking mechanism (46) and being moved to said hidden position (82) by activation of said compressed gas release mechanism (30).
- The improved bug killing gun (10), as described in Claim 1 or 2, wherein said compressed gas source (14) is selected from the group comprising:
a prefdled CO2 cartridge (88), a refillable compressed gas cylinder (90), a pneumatically pumped gas reservoir (94), a spring-activated compressed gas chamber (98) and an external compressed gas line (102). - The improved bug killing gun (10), as described in at least one of Claims 1 to 3, wherein said gun (10) uses a spring-activated compressed gas chamber (98) as a compressed gas source (14), wherein said spring-activated compressed gas chamber (98) further comprises:a cylinder (106), said cylinder (106) having a front end (110) and a rear end (114) and being fluidly connected to said chamber (18) at said front end (110);a piston (118), said piston (118) fitting sealably in said cylinder (106) and being disposed therein;a compression spring (122), said compression spring (122) urging said piston (118) toward said front end (110);a spring compression mechanism (126), said compression mechanism (126) urging said piston (118) towards said rear end (114) and compressing said compression spring (122);a latching mechanism (130), said latching mechanism (130) releasably retaining said piston (118) adjacent said rear end (114) and retaining said compression spring (122) in a compressed state (134); andwherein a user operates said cocking mechanism (46), said spring compression mechanism (126) is operated, said piston (118) is urged toward said rear end (114) of said cylinder (106), said spring (122) is compressed and said spring (122) and said piston (118) are retained by said latching mechanism (130) until released allowing said piston (118) to move rapidly toward said front end (110) of said cylinder (106), providing a burst of compressed gas (138) in said cylinder (106) and to said connected chamber (18).
- The improved bug killing gun (10), as described in at least one of Claims 1 to 4, wherein said projectile storage magazine (34) further comprises:a conical container (206), said container (206) having a circular opening (210) at a lower end (214);said lower end (214) fitted sealably to an upper end (218) of a vertical circular opening (222) through said chamber (18); andsaid container (206) having a sealing lid (122) removably or hingedly attached at an upper end (130).
- The improved bug killing gun (10), as described in Claim 5, wherein said projectile loading mechanism (42) further comprises:a metering rod (234), said metering rod (234) being sized and shaped to fit sealably through said vertical circular opening (222) through said chamber (18) and having an orthogonal activation bar (238) extending from a lower end (242) thereof and a through hole (246) disposed above said activation bar (238), said through hole (246) being orthogonal to said bar (238) and said metering rod (234) and sized and disposed to align with said chamber (18) when said bar (234) is positioned against a stopping surface (250);said activation bar (234) being urged upwardly by a return compression spring (254) to rest against said lower end (258) of said vertical circular opening (222) in said chamber (18);said through hole (246) filling with said particulate projectiles (38) when disposed above said chamber (18) in said conical container (206) during operation of said cocking mechanism (46); andsaid activation bar (234) being urged downwardly by a pivotally mounted subordination pole (262) to rest against said stopping surface (250) just after activation of said compressed gas release mechanism (30), permitting said compressed gas (138) to eject said particulate projectiles (38) from said chamber (18) and through said barrel (22).
- The improved bug killing gun (10), as described in Claim 5 or 6, wherein said projectile loading mechanism (42) further comprises:a mid-chamber pipe (266), said pipe (266) extending downwardly from a lower end (258) of said magazine (34);a lower portion (282) of said pipe (266) providing a stop (286) for one end (290) of a return compression spring (254);a trajectory guide (298), said guide (298) disposed below said magazine (34), having a hollow bore (302) sized to fit slidably about said pipe (266) and having a vertical slot (306) extending downwardly from said lower end (258) for a first predetermined distance (308) and terminating in a stopping surface (250);said trajectory guide (298) being disposed about said pipe (266) and providing a support platform (310) for attachment of said projectile storage magazine (34);a metering rod (234), said rod (234) being cylindrical in shape and being sized to fit slidably within said pipe (266) and having an orthogonal activation bar (238) extending from a lower end (242) thereof and a through hole (246) disposed above said activation bar (238), said through hole (246) being orthogonal to said bar (238) and said metering rod (234) and sized and disposed to align with said chamber (18) when said bar (238) is positioned against said stopping surface (250);said return compression spring (254) urging said metering rod (234) upwardly to rest against said lower end (258) of said vertical circular opening (222) in said chamber (18); anda subordination pole (262), said pole (262) having a first end (314) and a second end (318), being pivotally mounted to a cover (322) for said compressed gas source (14), said first end (314) comprising a metering slot (264), said metering slot (264) surrounding said activation bar (238), said second end (318) being urged upwardly by a cam (330) upon activation of said gas release mechanism (30);wherein upward movement of said second end (318) of said subordination pole (262) moves said activation bar (238) downwardly, compressing said return compression spring (254) and aligning said through hole (246) of said metering rod (234) with said chamber (18), permitting said compressed gas (138) to drive said particulate projectiles (38) out of said chamber (18) and through said barrel (22);wherein downward movement of said second end (318) of said subordination pole (262) causes said activation bar (238) to move upwardly as urged by said return compression spring (254), said particulate projectiles (38) filling said through hole (246) of said metering rod (234) as it moves in said projectile storage magazine (34) surrounded by said particulate projectiles (38).
- The improved bug killing gun (10), as described in at least one of Claims 4 to 7, wherein said spring compression mechanism (126) further comprises:a primary gear rack (334), said gear rack (334) being slidably disposed in a channel (338) in said supporting stock (50), having gear teeth (342) disposed upon an upper surface (346) and having mounting fixtures (350) adjacent a forward end (354) for attachment of a slide handle (358);a reduction gear drive (362), said gear drive (362) mounted to an outer cover (322) of said cylinder (106);a secondary gear rack (370), said secondary rack (370) attached indirectly to said piston (118) and being disposed slidably in a slot in said outer cover (322) above said reduction gear drive (362);said primary gear rack (334) engaging said reduction gear drive (362) and said reduction gear drive (362) engaging said secondary gear rack (370); andwherein rearward movement of said slide handle (358) moves said primary gear rack (334) rearward, rotates said reduction gear drive (362), moves said secondary gear rack (370) rearward and moves said piston (118) rearward, compressing said compression spring (122).
- The improved bug killing gun (10), as described in at least one of Claims 1 to 8, wherein said supporting stock (50) further comprises a sight glass (422), said sight glass (422) positioned adjacent said magazine (34) and permitting a view of a level (426) of said particulate projectiles (38) contained therein.
- The improved bug killing gun (10), as described in at least one of Claims 1 to 3, wherein said gun (10) uses a prefilled CO2 cartridge (88) as a compressed gas source (14), said gun (10) further comprising:a cylindrical cartridge chamber (434), said cartridge chamber (434) being sized and shaped to enclose the CO2 cartridge (88), having a sealable opening (438) at a first end (442) for introduction of said cartridge (88), a concave seat (446) disposed at a second end (450), said seat (446) being sized and shaped to fit sealably about a discharging end (454) of said cartridge (88), a hollow puncturing needle (458) disposed within said seat (446);a sealing cap (466), said cap (466) being removably attached to said cartridge chamber (434) by mating screw threads (470), tightening of said cap (466) urging said cartridge against said puncturing needle (458);a pressure vessel (474), said pressure vessel (474) being fluidly connected to a metering device (478); andsaid metering device (478) permitting a predetermined charge of compressed gas (138) to enter said chamber (18) upon activation of said compressed gas release mechanism (30).
- The improved bug killing gun (10), as described in at least one of Claims 1 to 3, wherein said gun (10) uses a pneumatically pumped air reservoir (94) as a compressed gas source (14), said gun (10) further comprising:a gas cylinder (514), said cylinder (514) having an inlet valve (518) and an outlet valve (522);a piston (526), said piston (526) fitting sealably within said cylinder (514);a pumping mechanism (530), said pumping mechanism (530) mechanically linked to said piston (526), and moving said piston (526) from an extended position (534) to a compressed position (538) within said cylinder (514);said inlet valve (518) being in an open position (542) as said piston (526) moves from said compressed position (538) to said extended position (534) and being in a closed position as said piston (526) moves from said extended position (534) to said compressed position (538);said outlet valve (522) being in a closed position (550) as said piston (526) moves from said compressed position (538) to said extended position (534) and being in an open position as said piston (526) moves from said extended position (534) to said compressed position (538);said air reservoir (94) being fluidly connected to said outlet valve (522) and said chamber (18);said projectile loading mechanism (42) permitting a predetermined charge of compressed gas (138) to enter said chamber (18) upon activation of said compressed gas release mechanism (30); andwherein repeated movement of said piston (526) by said pumping mechanism (530) from said extended position (534) to said compressed position (538) within said cylinder (514) will increase pressure within said air reservoir (94), permitting said particulate projectiles (38) to be ejected from said chamber (18) with increased force upon release of said pressure by said compressed gas release mechanism (30).
- The improved bug killing gun (10), as described in at least one of Claims 1 to 3, wherein said gun (10) uses a refillable compressed gas cylinder (90) as a compressed gas source (14), said gun (10) further comprising:A refillable compressed gas cylinder (90), said cylinder (90) having a shut off valve (574) and an attachment fitting (578) disposed adjacent a first end (582);a mating attachment fitting (586), said mating fitting (586) mounted to said supporting stock (50) and being fluidly connected to a metering device (478);said metering device (478) being fluidly connected to said chamber (18) and said metering device (478) permitting a predetermined charge of compressed gas (138) to enter said chamber (18) upon activation of said compressed gas release mechanism (30); andwherein a charged refillable compressed gas cylinder (90) is attached to said mating attachment fitting (586), said shut off valve (574) is opened and said compressed gas (138) is released by said metering device (478) upon activation of said compressed gas release mechanism (30).
- The improved bug killing gun (10), as described in at least one of Claims 1 to 3, wherein said gun (10) uses an external compressed gas line (102) as a compressed gas source (14), said gun (10) further comprising: the external compressed gas line (102), said line (102) being connected to a compressed gas source (592) and having a shut off valve (594) and an attachment fitting (598) disposed adjacent a first end (602);a mating attachment fitting (606), said mating fitting (606) mounted to said supporting stock (50) and being fluidly connected to a metering device (478);said metering device (478) being fluidly connected to said chamber (18) and said metering device (478) permitting a predetermined charge of compressed gas (138) to enter said chamber (18) upon activation of said compressed gas release mechanism (30); andwherein said external compressed gas line (102) is attached to said mating attachment fitting (606), said shut off valve (594) is opened and said compressed gas (138) is released by said metering device (478) upon activation of said compressed gas release mechanism (30).
- The improved bug killing gun (10), as described in at least one of Claims 1 to 13, wherein a pistol grip (610) and a forearm (614) of said supporting stock (50) have flattened lower surfaces (618, 622), said flattened surfaces (618, 622) permitting said bug killing gun (10) to be balanced in an upright position (626) for adding said particulate projectiles (38) to said projectile storage magazine (34).
- The improved bug killing gun (10), as described in at least one of Claims 1 to 14, further comprising a laser sighting device (630), said laser sighting device (630) comprising:a battery powered laser (634), said laser (634) capable of producing a laser aiming spot (638);a housing (642), said housing (642) adapted to contain said laser (634), a battery power source (646) and a control circuit (650) for said laser (634); andan attachment mechanism (654), said attachment mechanism (654) adapted to attach said laser sighting device (630) adjacent a distal end (658) of said barrel (22).
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP22181332.2A EP4119885A1 (en) | 2016-06-24 | 2016-06-24 | Bug killing gun |
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP22181332.2A EP4119885A1 (en) | 2016-06-24 | 2016-06-24 | Bug killing gun |
PCT/US2016/039268 WO2017222555A1 (en) | 2016-06-24 | 2016-06-24 | Improved bug killing gun |
EP16906465.6A EP3458794A4 (en) | 2016-06-24 | 2016-06-24 | Improved bug killing gun |
Related Parent Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP16906465.6A Division EP3458794A4 (en) | 2016-06-24 | 2016-06-24 | Improved bug killing gun |
Publications (1)
Publication Number | Publication Date |
---|---|
EP4119885A1 true EP4119885A1 (en) | 2023-01-18 |
Family
ID=60784150
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP22181332.2A Pending EP4119885A1 (en) | 2016-06-24 | 2016-06-24 | Bug killing gun |
EP16906465.6A Pending EP3458794A4 (en) | 2016-06-24 | 2016-06-24 | Improved bug killing gun |
Family Applications After (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP16906465.6A Pending EP3458794A4 (en) | 2016-06-24 | 2016-06-24 | Improved bug killing gun |
Country Status (11)
Country | Link |
---|---|
US (1) | US9939227B2 (en) |
EP (2) | EP4119885A1 (en) |
JP (1) | JP6566340B2 (en) |
CN (1) | CN109313001B (en) |
AU (1) | AU2016410620B2 (en) |
CA (1) | CA3021312C (en) |
GB (1) | GB2561792B (en) |
MX (1) | MX2018015898A (en) |
NZ (1) | NZ742511A (en) |
WO (1) | WO2017222555A1 (en) |
ZA (1) | ZA201805377B (en) |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
PL3480549T3 (en) * | 2017-11-02 | 2021-04-06 | Loren MAGGIORE | Compact bug killing gun |
WO2020041623A1 (en) * | 2018-08-22 | 2020-02-27 | Kr8X, Llc | Insect eradication device |
KR102521485B1 (en) * | 2018-09-21 | 2023-04-14 | 삼성전자주식회사 | Display apparatus |
AU2020394626B2 (en) * | 2020-04-07 | 2022-02-17 | Loren MAGGIORE | Bug killing gun |
CN113197174B (en) * | 2021-05-11 | 2024-01-09 | 朱见锋 | Novel electronic fly-killing toy gun |
Citations (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US1611533A (en) | 1924-02-07 | 1926-12-21 | Kirsten Walter Bruno Erwin | Insect-shooting device |
US3791303A (en) | 1973-02-22 | 1974-02-12 | Aai Corp | Deterrent ammunition |
US3924599A (en) * | 1973-05-21 | 1975-12-09 | L & R Ind Inc | Air gun mechanism arrangement including trigger safety |
US4161076A (en) * | 1977-10-31 | 1979-07-17 | Snyder Wesley L | Aiming system for weapons |
US4653433A (en) | 1985-07-01 | 1987-03-31 | Joseph Comparetti | Flea zapper |
US20060283433A1 (en) | 2005-03-25 | 2006-12-21 | Martin Gerardo | Projection apparatus using pressurized air |
US7207497B2 (en) | 2003-02-22 | 2007-04-24 | Clark Rikk A | Dry flake sprayer and method |
US8251051B2 (en) | 2010-03-12 | 2012-08-28 | Loren Maggiore | Bug killing gun |
Family Cites Families (20)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US507470A (en) * | 1893-10-24 | Aie gun | ||
US1205586A (en) * | 1916-02-02 | 1916-11-21 | Robert Clifton Worley | Air-compression gun. |
US1266533A (en) * | 1917-11-05 | 1918-05-14 | Heinrich Beck | Toy gun. |
US1869600A (en) * | 1927-10-08 | 1932-08-02 | Remington Arms Co Inc | Air-gun |
US3308571A (en) | 1965-06-10 | 1967-03-14 | Forrest H Jones | Insect killing device |
US3403669A (en) * | 1966-08-11 | 1968-10-01 | Luxe Topper Corp De | Toy cannon with barrel recoil mechanism |
US3672301A (en) | 1969-12-31 | 1972-06-27 | Aai Corp | Cartridge |
US3704981A (en) | 1970-12-31 | 1972-12-05 | Jack Pohr | Fly gun |
US4834059A (en) * | 1988-03-16 | 1989-05-30 | Ljn Toys, Ltd. | Air gun with safety features |
US6393992B1 (en) | 1996-11-18 | 2002-05-28 | Jaycor Tactical Systems, Inc. | Non-lethal projectile for delivering an inhibiting substance to a living target |
EP0960316A4 (en) * | 1997-02-11 | 2001-06-27 | Marshal Arms Inc | Improved magazine and feed mechanism for firearms |
US6220237B1 (en) * | 1999-07-30 | 2001-04-24 | Johnson Research & Development Company, Inc. | Compressed air toy gun |
US20020179075A1 (en) | 2001-01-19 | 2002-12-05 | International Fly Masters, Inc. | Chemical agent delivery device and method of using same |
AU773534B2 (en) | 2001-08-15 | 2004-05-27 | Nch Corporation | Control agent delivery system and method of use |
US20040244787A1 (en) * | 2003-05-21 | 2004-12-09 | Lien-Chao Hsiao | Structure of a paintball gun |
US7287527B1 (en) * | 2005-04-11 | 2007-10-30 | Paul Piper | Compressed gas BB airgun |
US7694629B2 (en) * | 2008-04-10 | 2010-04-13 | Daniel Pawloski | Method and system for controlling small wild animals and rodents |
JP4700123B2 (en) * | 2009-06-25 | 2011-06-15 | 有限会社マルゼン | Electric air gun |
US8720426B2 (en) * | 2011-02-25 | 2014-05-13 | Razor Usa, Llc | Soft impact projectile launcher |
TWI486546B (en) * | 2013-08-27 | 2015-06-01 | Incorn Hobby Corp | The action of a toy gun |
-
2016
- 2016-06-24 NZ NZ742511A patent/NZ742511A/en unknown
- 2016-06-24 WO PCT/US2016/039268 patent/WO2017222555A1/en active Application Filing
- 2016-06-24 EP EP22181332.2A patent/EP4119885A1/en active Pending
- 2016-06-24 CN CN201680087045.4A patent/CN109313001B/en active Active
- 2016-06-24 JP JP2018526950A patent/JP6566340B2/en active Active
- 2016-06-24 GB GB1812386.9A patent/GB2561792B/en active Active
- 2016-06-24 CA CA3021312A patent/CA3021312C/en active Active
- 2016-06-24 EP EP16906465.6A patent/EP3458794A4/en active Pending
- 2016-06-24 AU AU2016410620A patent/AU2016410620B2/en active Active
- 2016-06-24 MX MX2018015898A patent/MX2018015898A/en unknown
-
2017
- 2017-11-02 US US15/801,393 patent/US9939227B2/en active Active
-
2018
- 2018-08-13 ZA ZA2018/05377A patent/ZA201805377B/en unknown
Patent Citations (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US1611533A (en) | 1924-02-07 | 1926-12-21 | Kirsten Walter Bruno Erwin | Insect-shooting device |
US3791303A (en) | 1973-02-22 | 1974-02-12 | Aai Corp | Deterrent ammunition |
US3924599A (en) * | 1973-05-21 | 1975-12-09 | L & R Ind Inc | Air gun mechanism arrangement including trigger safety |
US4161076A (en) * | 1977-10-31 | 1979-07-17 | Snyder Wesley L | Aiming system for weapons |
US4653433A (en) | 1985-07-01 | 1987-03-31 | Joseph Comparetti | Flea zapper |
US7207497B2 (en) | 2003-02-22 | 2007-04-24 | Clark Rikk A | Dry flake sprayer and method |
US20060283433A1 (en) | 2005-03-25 | 2006-12-21 | Martin Gerardo | Projection apparatus using pressurized air |
US8251051B2 (en) | 2010-03-12 | 2012-08-28 | Loren Maggiore | Bug killing gun |
Also Published As
Publication number | Publication date |
---|---|
EP3458794A4 (en) | 2019-08-28 |
CN109313001A (en) | 2019-02-05 |
GB201812386D0 (en) | 2018-09-12 |
GB2561792B (en) | 2020-02-19 |
JP6566340B2 (en) | 2019-08-28 |
AU2016410620A1 (en) | 2018-06-07 |
CA3021312A1 (en) | 2017-12-28 |
US9939227B2 (en) | 2018-04-10 |
WO2017222555A1 (en) | 2017-12-28 |
AU2016410620B2 (en) | 2019-04-18 |
JP2019515644A (en) | 2019-06-13 |
NZ742511A (en) | 2020-02-28 |
CA3021312C (en) | 2021-11-16 |
MX2018015898A (en) | 2019-03-28 |
EP3458794A1 (en) | 2019-03-27 |
CN109313001B (en) | 2021-08-27 |
GB2561792A (en) | 2018-10-24 |
US20180064092A1 (en) | 2018-03-08 |
ZA201805377B (en) | 2019-06-26 |
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